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Quantitative Immunohistochemistry of the Cellular Microenvironment in Patient Glioblastoma Resections
Published on: July 31, 2017
Microglia in close vicinity of glioma cells: correlation between phenotype and metabolic alterations
Pierre Voisin1, Véronique Bouchaud, Michel Merle
1RMSB Center, Centre National de la Recherche Scientifique/Université Victor Segalen Bordeaux 2 Bordeaux, France.
Abstract:
Microglia are immune cells within the central nervous system. In brain-developing tumors, gliomas are able to silence the defense and immune functions of microglia, a phenomenon which strongly contributes to tumor progression and treatment resistance. Being activated and highly motile, microglia infiltrate tumors and secrete macrophagic chemoattractant factors. Thereafter, the tumor cells shut down their immune properties and stimulate the microglia to release tumor growth-promoting factors. The result of such modulation is that a kind of symbiosis occurs between microglia and tumor cells, in favor of tumor growth. However, little is known about microglial phenotype and metabolic modifications in a tumoral environment. Co-cultures were performed using CHME5 microglia cells grown on collagen beads or on coverslips and placed on monolayer of C6 cells, limiting cell/cell contacts. Phagocytic behavior and expression of macrophagic and cytoskeleton markers were monitored. Respiratory properties and energetic metabolism were also studied with regard to the activated phenotype of microglia. In co-cultures, transitory modifications of microglial morphology and metabolism were observed linked to a concomitant transitory increase of phagocytic properties. Therefore, after 1 h of co-culture, microglia were activated but when longer in contact with tumor cells, phagocytic properties appear silenced. Like the behavior of the phenotype, microglial respiration showed a transitory readjustment although the mitochondria maintained their perinuclear relocation. Nevertheless, the energetic metabolism of the microglia was altered, suggesting a new energetic steady state. The results clearly indicate that like the depressed immune properties, the macrophagic and metabolic status of the microglia is quickly driven by the glioma environment, despite short initial phagocytic activation. Such findings question the possible contribution of diffusible tumor factors to the microglial metabolism.
Insights
Glioma tumors manipulate microglia, brain immune cells, to promote their own growth. This study reveals how tumor cells alter microglial metabolism and immune function, impacting brain tumor progression.
Area of Science:
- Neuroscience
- Immunology
- Cancer Biology
Background:
- Microglia are central nervous system immune cells crucial for brain health.
- Gliomas can suppress microglial immune functions, aiding tumor progression and treatment resistance.
- The precise microglial phenotype and metabolic changes within a tumor microenvironment are not fully understood.
Purpose of the Study:
- To investigate microglial phenotype and metabolic alterations in response to glioma cells.
- To understand the dynamic interactions between microglia and glioma cells in vitro.
- To elucidate the impact of the tumor microenvironment on microglial immune and metabolic status.
Main Methods:
- Co-culture systems using CHME5 microglia and C6 glioma cells were established.
- Assessed microglial phagocytic activity and expression of macrophagic/cytoskeleton markers.
- Analyzed microglial respiratory function and energetic metabolism.
Main Results:
- Microglia exhibited transient morphological and metabolic changes with initial phagocytic activation.
- Prolonged co-culture led to silenced phagocytic properties and altered microglial respiration.
- Microglial energetic metabolism was significantly altered, indicating a shift to a new metabolic steady state.
Conclusions:
- Glioma environments rapidly alter microglial immune and metabolic status, overriding initial activation.
- Tumor-induced changes in microglia favor tumor growth and treatment resistance.
- Diffusible tumor factors may play a significant role in modulating microglial metabolism.